Efficient Delivery of Antimicrobial Peptides in an Innovative, Slow-Release Pharmacological Formulation

Author:

Serna Naroa123,López-Laguna Hèctor123,Aceituno Patricia14ORCID,Rojas-Peña Mauricio14,Parladé Eloi123ORCID,Voltà-Durán Eric123ORCID,Martínez-Torró Carlos123,Sánchez Julieta M.1235ORCID,Di Somma Angela1ORCID,Carratalá Jose Vicente123,Livieri Andrea L.1,Ferrer-Miralles Neus123ORCID,Vázquez Esther123,Unzueta Ugutz236ORCID,Roher Nerea134,Villaverde Antonio123ORCID

Affiliation:

1. Institut de Biotecnologia i de Biomedicina (IBB), Universitat Autònoma de Barcelona, 08193 Barcelona, Spain

2. Departament de Genètica i de Microbiologia, Universitat Autònoma de Barcelona, 08193 Barcelona, Spain

3. Centro de Investigación Biomédica en Red de Bioingeniería, Biomateriales y Nanomedicina, Instituto de Salud Carlos III, 28029 Barcelona, Spain

4. Departament de Biologia Cel·lular, Fisiologia Animal i Immunologia, Universitat Autònoma de Barcelona, 08193 Barcelona, Spain

5. Instituto de Investigaciones Biológicas y Tecnológicas (IIBYT), (CONICET-Universidad Nacional de Córdoba), ICTA, FCEFyN, UNC. Av. Velez Sarsfield 1611, Córdoba X 5016GCA, Argentina

6. Biomedical Research Institute Sant Pau (IIB Sant Pau), 08041 Barcelona, Spain

Abstract

Both nanostructure and multivalency enhance the biological activities of antimicrobial peptides (AMPs), whose mechanism of action is cooperative. In addition, the efficacy of a particular AMP should benefit from a steady concentration at the local place of action and, therefore, from a slow release after a dynamic repository. In the context of emerging multi-resistant bacterial infections and the urgent need for novel and effective antimicrobial drugs, we tested these concepts through the engineering of four AMPs into supramolecular complexes as pharmacological entities. For that purpose, GWH1, T22, Pt5, and PaD, produced as GFP or human nidogen-based His-tagged fusion proteins, were engineered as self-assembling oligomeric nanoparticles ranging from 10 to 70 nm and further packaged into nanoparticle-leaking submicron granules. Since these materials slowly release functional nanoparticles during their time-sustained unpacking, they are suitable for use as drug depots in vivo. In this context, a particular AMP version (GWH1-NIDO-H6) was selected for in vivo validation in a zebrafish model of a complex bacterial infection. The GWH1-NIDO-H6-secreting protein granules are protective in zebrafish against infection by the multi-resistant bacterium Stenotrophomonas maltophilia, proving the potential of innovative formulations based on nanostructured and slowly released recombinant AMPs in the fight against bacterial infections.

Funder

Agencia Estatal de Investigación

Fondo Europeo de Desarrollo Regional

NAUTILIS

AGAUR

Instituto de Salud Carlos III cofounded by FEDER

Ministerio de Ciencia e Innovación

Ministerio de Universidades

Universitat Autònoma de Barcelona

ISCIII

Spanish Ministry of Science

Agencia Nacional de Investigación y Desarrollo

Publisher

MDPI AG

Subject

Pharmaceutical Science

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